IP Library Granted Patent US 10,356,889
Granted Patent B1
US 10,356,889 · App. 14/075,380 · Granted Jul 16, 2019

Passive method for controlling and correcting energy correlations in charged particle beams

Inventors: James Simpson (Fountain Hills, AZ); Michael Rosing (Madison, WI); Alexander Zholents (Darien, IL); Sergey Antipov (Darien, IL); Chunguang Jing (Naperville, IL); Paul Schoessow (Lakewood, CO); Alexei Kanareykin (Gaithrsburg, MD)
Assignee: EUCLID TECHLABS LLC
H05H7/001H01S4/00H05H9/00H05H2007/004
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Quick Facts
Patent No.
US 10,356,889
App. No.
14/075,380
Granted
Jul 16, 2019
Kind
B1
Abstract

A technique for controlling and compensating the energy spread of a charged particle beam is provided. This technique is based on a passive dielectric-loaded structure that redistributes the energy within the bunch by means of the wakefield generated in the structure. Cylindrical and planar structure configurations are provided and also means for electrical and mechanical tuning to optimize performance. The instant abstract is neither intended to define the invention disclosed in this specification nor intended to limit the scope of the invention in any way.

Claims (12)

1. A passive electromagnetic resonator used to condition a charged particle beam by redistributing its energy comprising:

a passive dielectric cavity that redistributes an energy of a charged particle bunch passing through it by means of a wakefield induced in the structure by said particle bunch, wherein energy is thereby redistributed in such a way as to reduce the energy spread of the bunch by removing the longitudinal energy-position correlation.

2. The passive electromagnetic resonator of claim 1 , wherein said passive dielectric cavity further comprises a planar geometry dielectric structure adapted to be tuned to produce an optimized bunch energy spread, wherein the mechanism of tuning is selected from the group consisting of one or more of the following: altering the beam channel aperture in the structure; use of a thin ferroelectric layer incorporated into the dielectric structure to electrically control the effective permeability of the structure; and use of a thin ferroelectric layer incorporated into the dielectric structure to thermally control the effective permeability of the structure.

3. The passive electromagnetic resonator of claim 1 , wherein said passive dielectric cavity further comprises a cylindrical geometry dielectric structure that can be tuned to produce an optimized bunch energy spread, wherein the mechanism of tuning is selected from the group consisting of one or more of the following: altering the beam channel aperture in the structure; use of a thin ferroelectric layer incorporated into the dielectric structure to electrically control the effective permeability of the structure; and use of a thin ferroelectric layer incorporated into the dielectric structure to thermally control the effective permeability of the structure.

4. The passive electromagnetic resonator of claim 1 adapted for use in improving the performance of an X-Ray free electron laser.

5. The passive electromagnetic resonator of claim 1 adapted for use in improving the performance of a linear accelerator based system.

6. The passive electromagnetic resonator of claim 2 adapted for use in improving the performance of an X-Ray free electron laser.

7. The passive electromagnetic resonator of claim 2 adapted for use in improving the performance of a linear accelerator based system.

8. A method to compensate and correct the position correlated energy spread of a charged particle beam through the use of conditioning the particle beam by redistribution of energy inside a bunch and thereby eliminating the need for an external power source for the device.

9. An apparatus for practicing the method of claim 8 .

10. The passive electromagnetic resonator of claim 3 adapted for use in improving the performance of an X-Ray free electron laser.

11. The passive electromagnetic resonator of claim 3 adapted for use in improving the performance of a linear accelerator based system.

Assignments (6)
CONFIRMATORY LICENSE Recorded Jul 18, 2023
From: EUCLID BEAMLABS, LLC
To: UNITED STATES DEPARTMENT OF ENERGY
Reel/Frame 064305/0139 →
CORRECTIVE ASSIGNMENT TO CORRECT THE REMOVE THIRD INVENTOR ALSO EXECUTION DATE FOR 5TH INVENTOR PREVIOUSLY RECORDED AT REEL: 31569 FRAME: 174. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Aug 14, 2019
From: SIMPSON, JAMES; ROSING, MICHAEL; ANTIPOV, SERGEY; JING, CHUNGUANG; SCHOESSOW, PAUL; KANAREYKIN, ALEXEI
To: EUCLID TECHLABS, LLC
Reel/Frame 050056/0957 →
CORRECTIVE ASSIGNMENT TO CORRECT THE EXECUTION DATES FOR ALL ALSO REMOVE THIRD INVENTOR PREVIOUSLY RECORDED AT REEL: 33464 FRAME: 242. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Aug 14, 2019
From: SIMPSON, JAMES; ROSING, MICHAEL; ANTIPOV, SERGEY; JING, CHUNGUANG; SCHOESSOW, PAUL; KANAREYKIN, ALEXEI
To: EUCLID TECHLABS, LLC
Reel/Frame 050057/0001 →
CONFIRMATORY LICENSE Recorded Jun 22, 2015
From: EUCLID TECHLABS
To: ENERGY, UNITED STATES DEPARTMENT OF
Reel/Frame 036015/0487 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 4, 2014
From: SIMPSON, JAMES; ROSING, MICHAEL; ZHOLENTS, ALEXANDER; ANTIPOV, SERGEY; JING, CHUNGUANG; SCHOESSOW, PAUL; KANAREYKIN, ALEXEI
To: EUCLID TECHLABS LLC
Reel/Frame 033464/0242 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 8, 2013
From: SIMPSON, JAMES; ROSING, MICHAEL; ZHOLENTS, ALEXANDER; ANTIPOV, SERGEY; JING, CHUNGUANG; SCHOESSOW, PAUL; KANAREYKIN, ALEXEI
To: EUCLID TECHLABS LLC
Reel/Frame 031569/0174 →
Continuity (1)
Provisional Application 61724440 · Nov 9, 2012